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Published on: July 10, 2019
Cardioprotective effects of ingliforib, a novel glycogen phosphorylase inhibitor
W Ross Tracey1, Judith L Treadway, William P Magee
1Pfizer Global Research and Development, MS8220-3125, Eastern Point Rd., Groton, CT 06340, USA. w_ross_tracey@groton.pfizer.com
Abstract:
Interventions such as glycogen depletion, which limit myocardial anaerobic glycolysis and the associated proton production, can reduce myocardial ischemic injury; thus it follows that inhibition of glycogenolysis should also be cardioprotective. Therefore, we examined whether the novel glycogen phosphorylase inhibitor 5-Chloro-N-[(1S,2R)-3-[(3R,4S)-3,4-dihydroxy-1-pyrrolidinyl)]-2-hydroxy-3-oxo-1-(phenylmethyl)propyl]-1H-indole-2-carboxamide (ingliforib; CP-368,296) could reduce infarct size in both in vitro and in vivo rabbit models of ischemia-reperfusion injury (30 min of regional ischemia, followed by 120 min of reperfusion). In Langendorff-perfused hearts, constant perfusion of ingliforib started 30 min before regional ischemia and elicited a concentration-dependent reduction in infarct size; infarct size was reduced by 69% with 10 microM ingliforib. No significant drug-induced changes were observed in either cardiac function (heart rate, left ventricular developed pressure) or coronary flow. In open-chest anesthetized rabbits, a dose of ingliforib (15 mg/kg loading dose; 23 mg.kg(-1).h(-1) infusion) selected to achieve a free plasma concentration equivalent to an estimated EC(50) in the isolated hearts (1.2 microM, 0.55 microg/ml) significantly reduced infarct size by 52%, and reduced plasma glucose and lactate concentrations. Furthermore, myocardial glycogen phosphorylase a and total glycogen phosphorylase activity were reduced by 65% and 40%, respectively, and glycogen stores were preserved in ingliforib-treated hearts. No significant change was observed in mean arterial pressure or rate-pressure product in the ingliforib group, although heart rate was modestly decreased postischemia. In conclusion, glycogen phosphorylase inhibition with ingliforib markedly reduces myocardial ischemic injury in vitro and in vivo; this may represent a viable approach for both achieving clinical cardioprotection and treating diabetic patients at increased risk of cardiovascular disease.
Insights
Inhibiting glycogen phosphorylase with ingliforib significantly reduces heart damage from ischemia-reperfusion injury in rabbit models. This novel approach shows promise for cardioprotection, especially in diabetic patients.
Area of Science:
- Biochemistry
- Cardiology
- Pharmacology
Background:
- Myocardial ischemic injury is exacerbated by anaerobic glycolysis and proton production.
- Inhibition of glycogenolysis, the breakdown of glycogen, is a potential strategy for cardioprotection.
- Glycogen phosphorylase is a key enzyme in glycogenolysis.
Purpose of the Study:
- To investigate the cardioprotective effects of ingliforib, a novel glycogen phosphorylase inhibitor.
- To evaluate the efficacy of ingliforib in reducing infarct size in vitro and in vivo models of ischemia-reperfusion injury.
Main Methods:
- Langendorff-perfused rabbit hearts subjected to regional ischemia and reperfusion.
- Open-chest anesthetized rabbits undergoing regional ischemia and reperfusion.
- Administration of ingliforib before ischemia and assessment of infarct size, cardiac function, and biochemical markers.
- Measurement of myocardial glycogen phosphorylase activity and glycogen stores.
Main Results:
- Ingliforib demonstrated a concentration-dependent reduction in infarct size in isolated hearts (up to 69% at 10 microM).
- In vivo, ingliforib (15 mg/kg loading dose; 23 mg.kg(-1).h(-1) infusion) reduced infarct size by 52% and decreased plasma glucose and lactate.
- Ingliforib preserved myocardial glycogen stores and reduced glycogen phosphorylase activity (65% for phosphorylase a, 40% for total activity) without significant adverse effects on hemodynamics.
Conclusions:
- Glycogen phosphorylase inhibition with ingliforib markedly reduces myocardial ischemic injury in both in vitro and in vivo settings.
- Ingliforib represents a potential therapeutic strategy for clinical cardioprotection.
- This approach may be particularly beneficial for diabetic patients at elevated cardiovascular risk.
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